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聚碳酸三亚甲基酯和聚碳酸丁二醇酯的构象分析及脂肪族聚碳酸酯的结构-性能关系

Conformational Analysis of Poly(trimethylene carbonate) and Poly(butylene carbonate) and Structure-Property Relationships of Aliphatic Polycarbonates.

作者信息

Uesugi Yuko, Sasanuma Yuji

机构信息

Department of Applied Chemistry and Biotechnology, Graduate School and Faculty of Engineering, Chiba University 1-33, Yayoi-cho, Inage-ku, Chiba 263-8522, Japan.

出版信息

J Phys Chem B. 2025 Mar 6;129(9):2637-2646. doi: 10.1021/acs.jpcb.4c07698. Epub 2025 Feb 25.

Abstract

Conformational analysis of poly(trimethylene carbonate) (PTMC) and poly(butylene carbonate) (PBC) was conducted. The most stable conformations in the spacers, O(CH)O, of PTMC ( = 3) and PBC ( = 4) were found to be tggt and tgtgt, respectively. The former conformation leads to a long zigzag form for PTMC, while the latter extends the PBC chain along the molecular axis. The O-C and OC-CC bonds in the PTMC spacer prefer trans and gauche conformations, respectively, while the O-C, OC-CC, and CC-CC bonds of PBC show trans, gauche, and trans preferences, respectively. The characteristic ratios of PTMC and PBC in a nonpolar environment at 25 °C were evaluated to be 6.89 and 8.27, respectively, significantly larger than those of poly(ethylene carbonate) (PEC, 2.42) and head-to-tail isotactic poly(propylene carbonate) (PPC, 2.36). As the spacer length increases (PEC, PPC → PTMC → PBC), the negative charge on the carbonate group becomes delocalized, reducing interchain electrostatic repulsions. Consequently, PEC and PPC remain amorphous, whereas PTMC and PBC can only crystallize with difficulty. However, the weak interchain attractions in both crystals result in low enthalpies of fusion, and, correspondingly, relatively low melting points.

摘要

对聚碳酸三亚甲基酯(PTMC)和聚碳酸丁二醇酯(PBC)进行了构象分析。发现PTMC((n = 3))和PBC((n = 4))的间隔基O(CH)O中最稳定的构象分别为tggt和tgtgt。前一种构象导致PTMC形成长之字形结构,而后一种构象使PBC链沿分子轴延伸。PTMC间隔基中的O-C键和OC-CC键分别倾向于反式和顺式构象,而PBC的O-C键、OC-CC键和CC-CC键分别表现出反式、顺式和反式偏好。在25℃的非极性环境中,PTMC和PBC的特征比分别评估为6.89和8.27,显著大于聚碳酸亚乙酯(PEC,2.42)和头-尾全同立构聚碳酸丙烯酯(PPC,2.36)。随着间隔基长度增加(PEC、PPC→PTMC→PBC),碳酸酯基团上的负电荷变得离域,减少了链间静电排斥。因此,PEC和PPC保持无定形,而PTMC和PBC只能难以结晶。然而,两种晶体中较弱的链间吸引力导致低熔化焓,相应地熔点也相对较低。

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